Publication: Inferences on Parameters in Severely Heterogeneous Degree Corrected Stochastic Block Models
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Abstract
With the rise of big data, networks have pervaded many aspects of our daily lives, with applications ranging from the social to natural sciences. Understanding the latent structure of network is thus an important question. In this paper, we model the network using a Degree-Corrected Mixed Membership (DCMM) model, in which every node